volume calculation (1 Viewer)

Halo189

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1.20g of magnesium burns in air to form magnesium oxide
2Mg+O2--->2MgO

If oxygen makes up 20% of the air, calculate the volume of air required for the complete combustion of the 1.20g of magnesium
 

InteGrand

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1.20g of magnesium burns in air to form magnesium oxide
2Mg+O2--->2MgO

If oxygen makes up 20% of the air, calculate the volume of air required for the complete combustion of the 1.20g of magnesium
(HSC Chemistry data page: http://www.boardofstudies.nsw.edu.au/syllabus_hsc/pdf_doc/chemistry-data-sheet.pdf)

1.20 g of magnesium is n molecules of magnesium, where n = m/M = 1.20 g/(24.3050 g/mol) ≈ 0.0493725571 mol.

So the number of molecules of O2 (oxygen gas) required is half of this (as seen from the stoichiometry), i.e. about 0.0246862785 mol.

According to the HSC Chemistry data page, 1 mol of idealised gas at 100 kPa and 25°C has a volume of 24.79 L.

So 0.0246862785 mol in these conditions has a volume of ~ 0.0246862785 mol × 24.79 L/mol ≈ 611.972844 mL.

So we need 611.972844 mL of O2 gas. Since oxygen is one-fifth the volume of air (given), the required volume of air is approximately 5×611.972844 mL = 3.05986422 L, or 3 L (to 1 sig. fig.).
 
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Halo189

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(HSC Chemistry data page: http://www.boardofstudies.nsw.edu.au/syllabus_hsc/pdf_doc/chemistry-data-sheet.pdf)

1.20 g of magnesium is n molecules of magnesium, where n = m/M = 1.20 g/(24.3050 g/mol) ≈ 0.0493725571 mol.

So the number of molecules of O2 (oxygen gas) required is half of this (as seen from the stoichiometry), i.e. about 0.0246862785 mol.

According to the HSC Chemistry data page, 1 mol of idealised gas at 100 kPa and 25°C has a volume of 24.79 L.

So 0.0246862785 mol in these conditions has a volume of ~ 0.0246862785 mol × 24.79 L/mol ≈ 611.972844 mL.

So we need 611.972844 mL of O2 gas. Since oxygen is one-fifth the volume of air (given), the required volume of air required is aproximately 5×611.972844 mL = 3.05986422 L, or 3 L (to 1 sig. fig.).
Thanks heaps
 

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